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Applying Dissimilarity Representation to Off-Line Signature Verification

机译:将不同意见表达到离线签名验证

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In this paper, a two-stage off-line signature verification system based on dissimilarity representation is proposed. In the first stage, a set of discrete left-to-right HMMs trained with different number of states and codebook sizes is used to measure similarity values that populate new feature vectors. Then, these vectors are input to the second stage, which provides the final classification. Experiments were performed using two different classification techniques -- AdaBoost, and Random Subspaces with SVMs -- and a real-world signature verification database. Results indicate that the performance is significantly better with the proposed system over other reference signature verification systems from literature.
机译:本文提出了一种基于异化表示的两级离线签名验证系统。在第一阶段,使用不同数量的状态和码本大小培训的一组离散左右HMMS用于测量填充新功能向量的相似性值。然后,这些向量输入到第二阶段,其提供最终分类。使用两种不同的分类技术 - adaboost和具有SVMS的随机子空间进行实验 - 以及实际签名验证数据库。结果表明,在文献中的其他参考签名验证系统中,该系统明显更好。

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